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Alicja Szymańska, Amelia Skoczek and Jacek Przepiórski

., Sreńscek-Nazzal, J., Narkiewicz, U., Morawski, A.W., Wróbel, R.J. & Michalkiewicz, B. (2016). Preparation of Activated Carbon from Beet Molasses and TiO 2 as the Adsorption of CO 2 . Acta Phys. Pol. A. 129, 158–161. DOI: 10.12693/APhysPolA.129.158. 48. Sreńscek-Nazzal, J., Narkiewicz, U., Morawski, A.W., Wróbel, R.J. & Michalkiewicz, B. (2015). Comparison of Optimized Isotherm Models and Error Functions for Carbon Dioxide Adsorption on Activated Carbon. J. Chem. Eng. Data. 60, 3148–3158. DOI: 10.1021/acs.jced.5b00294. 49. Serafin, J., Narkiewicz, U

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Grzegorz Lewandowski

. 53, 1553-1557. Retrieved March 15, 2013, from http://pubs.acs.org. DOI: 10.1021/jo00242a041. 3. Venturello, C., D’Aloisio, R., Bart, J.C.J. & Ricci, M. (1985). A new peroxotungsten heteropoly anion with special oxidizing properties: synthesis and structure of tetrahexylammonium tetra (diperoxotungsto) phosphate (3-). J. Mol. Catal. , 32, 107-110. 4. Ishii, Y., Yamawaki, K., Ura, T., Yamada, H., Yoshida, T. & Ogawa, M. (1988). Hydrogen peroxide oxidation catalyzed by heteropoly acids combined with cetylpyridinium chloride

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Marta Falkowska and Eugeniusz J. Molga

Using Nanoparticle Catalysis. ACS Catalysis. 2, 65-70. DOI: 10.1021/cs200495s. 4. Vigneshwaran, N., Nachane, R.P., Balasubramanaya, R.H. & Varadarajan, P.V. (2006). A novel one-pot ‘green’ synthesis of stable silver nanoparticles using soluble starch. Carbohydr. Res. 341, 2012-2018. DOI: 10.1016/j. carres.2006.04.042. 5. Miller, G.L. (1956). Use of dinitrosalicylic acid reagent for determination of reducing sugar. Anal. Chem. 31(3), 426-428. DOI: 10.1021/ac60147a030. 6. Ernest, V., Shiny, P.J., Mukherjee, A

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Zenon Sarbak

References Datka J., Sarbak Z., Eischens R. P.: J. Catal. , 1994 , 145 , 594. Sarbak Z.: React. Kinet. Catal. Lett. , 2000 , 69 , 177. Sarbak Z., Appl. Catal. A , 1999 , 177 , 85. Sarbak Z.: "Sustainable Strategies for the Upgrading of Natural Gas", (Eds: Derouane E. C., Parmon V., Lemos F., Ramoa Ribeiro F.), NATO ASI, Springer 2005 , p. 359. Luddum K. H., Eischens R. P.: Petroleum Division Preprint, p. 375. ACS Meeting

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Guomin Li, Bing Wang, Rui Wang and Huiling Liu

upconversion fl uorescent probes for rapidly sensing foodborne pathogens. J. Agric. Food Chem. 63 (36), 8068-8074. DOI: 10.1021/acs.jafc.5b02331. 7. Reszczyńska, J., Grzyb, T., Sobczak, J.W., Lisowski, W., Gazda, M., Ohtani, B. & Zaleska, A. (2015). Visible light activity of rare earth metal doped (Er3+, Yb3+ or Er3+/Yb3+) titania photocatalysts. Appl. Catal. B 163, 40-49. DOI: 10.1016/j. apcatb.2014.07.010. 8. Rony, S.K., Jörg, B., Jordan, A.H., Alexandre, H, Fan, D., Felix, N.C. (2012). Upconversion-powered photoelectrochemistry. Rsc Adv. 48

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Zhen Jiao, Ziyi Wang, Xiudong Wang and Wenjing Fan

, 9529–9545. DOI: 10.1016/j.biomaterials.2014.07.059. 11. Li, N., Guo, C., Duan, Z., Yu, L., Luo, K., Lu, J. & Gu, Z. (2016). A stimuli-responsive Janus peptide dendron-drug conjugate as a safe and nanoscale drug delivery vehicle for breast cancer therapy. J. Mater. Chem. B , 4, 3760–3769. DOI: 10.1039/c6tb00688d. 12. Li, N., Cai, H., Jiang, L., Hu, J., Bains, A., Hu, J., Gong, Q., Luo, K. & Gu, Z. (2017). Enzyme-Sensitive and Amphiphilic PEGylated Dendrimer-Paclitaxel Prodrug-Based Nanoparticles for Enhanced Stability and Anticancer Efficacy ACS Appl

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Salar Zohoori, Masoud Latifi, Abolfazl Davodiroknabadi and Mohammad Mirjalili

Wei, Rongrong Jiang, Jing Kong & Yuan Chen. (2011). Antibacterial Activity of Graphite, Graphite Oxide, Graphene Oxide, and Reduced Graphene Oxide: Membrane and Oxidative Stress. ACS Nano 5, 6971–80. DOI: 10.1021/nn202451x. 27. Yvonne Ligaya F. Musico, Catherine M. Santos, Maria Lourdes P. Dalida, Debora F. Rodrigues. (2014). Surface Modification of Membrane Filters Using Graphene and Graphene Oxide-Based Nanomaterials for Bacterial Inactivation and Removal, ACS Sust. Chem. & Engine. 2, 1559–65. DOI: 10.1021/sc500044p. 28. Virender K. Sharma, Thomas J

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Katarzyna Pietrzak, Wiesława Olesińska, Cezary Strąk, Robert Siedlec and Andrzej Gładki

corrosion resistant graphene reinforced composite coating on copper by electrophoretic deposition, Carbon , Vol. 61, September 2013, Pages 47–56. DOI: 10.1016/j.carbon.2013.04.063. 10. Yao, Tong, Siva, Bohm & Mo, Song, (2013). Graphene based materials and their composites as coatings, Austin J. Nanomed. & Nanotech., Vol. 1 Issue 1. 11. Schriver, M., Regan, W., Gannett, W.J., Zaniewski, A. M., Crommie, M.F. & Zettl, A. (2013). Graphene as a Long-Term Metal Oxidation Barrier: Worse Than Nothing, ACS Nano, Vol. 7, No. 7, 5763–5768. DOI: 10.1021/nn4014356.

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Magdalena Regel-Rosocka and Maciej Wiśniewski

Developments. J. Hazard. Mater. 160, 265-288. DOI: 10.1016/j.jhazmat.2008.03.045. Olejniczak, J., Staniewski, J. & Szymanowski, J. (2005). Extraction of phenols and phenyl acetates with diethyl carbonate. Anal. Chim. Acta , 535, 251-257. DOI: 10.1016/j.aca.2004.11.080. Lyman, W. J. (1990). Handbook of Chemical Property Estimation Methods. Washington, USA: ACS. Huntsman, Jeffsol® Alkylene Carbonates in Personal Care, Technical Bulletin, 2003. Retrieved January 2010, from: http

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Magdalena Borowiec, Marta Huculak, Krystyna Hoffmann and Józef Hoffmann

. & Ngyuen, P.D. (2005). Biodegradation of L-glutamatediacetate by mixed cultures and an isolate, A.C.S. symposium series 910, 183 - 194. Safety Data Sheet Dissolvine GL-38. (2005). According to EC-Directive 2001/58/EC. Akzo Nobel introduce a new biodegradable chelating agent (2007, February). from www.dissolvine.com Kilimiuk, E. & Łebkowska, M. (2003). Biotechnology in protection of environment. PWN, Warszawa. (in Polish). Polish Committee for Standardization. (1988